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工程化的分隔仿生微纳容器。

Engineering Compartmentalized Biomimetic Micro- and Nanocontainers.

机构信息

Department of Chemistry and ‡Institute of Chemical Biology, Imperial College London , Exhibition Road, London SW7 2AZ, United Kingdom.

出版信息

ACS Nano. 2017 Jul 25;11(7):6549-6565. doi: 10.1021/acsnano.7b03245. Epub 2017 Jul 5.

Abstract

Compartmentalization of biological content and function is a key architectural feature in biology, where membrane bound micro- and nanocompartments are used for performing a host of highly specialized and tightly regulated biological functions. The benefit of compartmentalization as a design principle is behind its ubiquity in cells and has led to it being a central engineering theme in construction of artificial cell-like systems. In this review, we discuss the attractions of designing compartmentalized membrane-bound constructs and review a range of biomimetic membrane architectures that span length scales, focusing on lipid-based structures but also addressing polymer-based and hybrid approaches. These include nested vesicles, multicompartment vesicles, large-scale vesicle networks, as well as droplet interface bilayers, and double-emulsion multiphase systems (multisomes). We outline key examples of how such structures have been functionalized with biological and synthetic machinery, for example, to manufacture and deliver drugs and metabolic compounds, to replicate intracellular signaling cascades, and to demonstrate collective behaviors as minimal tissue constructs. Particular emphasis is placed on the applications of these architectures and the state-of-the-art microfluidic engineering required to fabricate, functionalize, and precisely assemble them. Finally, we outline the future directions of these technologies and highlight how they could be applied to engineer the next generation of cell models, therapeutic agents, and microreactors, together with the diverse applications in the emerging field of bottom-up synthetic biology.

摘要

生物内容和功能的区室化是生物学的一个关键结构特征,其中膜结合的微区室和纳区室用于执行许多高度专业化和严格调控的生物学功能。作为设计原则的区室化的好处是其在细胞中的普遍存在,并导致其成为构建人工类似细胞系统的核心工程主题。在这篇综述中,我们讨论了设计区室化膜结合构建体的吸引力,并回顾了一系列跨越长度尺度的仿生膜结构,重点关注基于脂质的结构,但也涉及基于聚合物和混合的方法。这些包括嵌套囊泡、多区室囊泡、大规模囊泡网络以及液滴界面双层和双乳液多相系统(多体)。我们概述了这些结构如何通过生物和合成机制进行功能化的关键示例,例如制造和递送药物和代谢化合物、复制细胞内信号级联以及展示作为最小组织构建体的集体行为。特别强调了这些结构的应用以及制造、功能化和精确组装它们所需的最先进的微流控工程。最后,我们概述了这些技术的未来发展方向,并强调了它们如何应用于工程下一代细胞模型、治疗剂和微反应器,以及在新兴的自下而上合成生物学领域的多样化应用。

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